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首页> 外文期刊>Metallurgical and Materials Transactions, A. Physical Metallurgy and Materials Science >Effect of Microstructure and Alloy Chemistry on Hydrogen Embrittlement of Precipitation-Hardened Ni-Based Alloys
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Effect of Microstructure and Alloy Chemistry on Hydrogen Embrittlement of Precipitation-Hardened Ni-Based Alloys

机译:微观结构和合金化学对沉淀硬化Ni基合金氢脆的影响

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The sensitivity to hydrogen embrittlement (HE) has been studied in respect of precipitation size distributions in two nickel-based superalloys: Alloy 718 (UNS N07718) and Alloy 945X (UNS N09946). Quantitative microstructure analysis was carried out by the combination of scanning and transmission electron microscopy and energy dispersive x-ray spectroscopy (EDS). While Alloy 718 is mainly strengthened by gamma aEuro(3), and therefore readily forms intergranular delta phase, Alloy 945X has been designed to avoid delta formation by reducing Nb levels providing high strength through a combination of gamma' and gamma aEuro(3). Slow strain rate tensile tests were carried out for different microstructural conditions in air and after cathodic hydrogen (H) charging. HE sensitivity was determined based on loss of elongation due to the H uptake in comparison to elongation to failure in air. Results showed that both alloys exhibited an elevated sensitivity to HE. Fracture surfaces of the H precharged material showed quasi-cleavage and transgranular cracks in the H-affected region, while ductile failure was observed toward the center of the sample. The crack origins observed on the H precharged samples exhibited quasi-cleavage with slip traces at high magnification. The sensitivity is slightly reduced for Alloy 718, by coarsening gamma aEuro(3) and reducing the overall strength of the alloy. However, on further coarsening of gamma aEuro(3), which promotes continuous decoration of grain boundaries with delta phase, the embrittlement index rose again indicating a change of hydrogen embrittlement mechanism from hydrogen-enhanced local plasticity (HELP) to hydrogen-enhanced decohesion embrittlement (HEDE). In contrast, Alloy 945X displayed a strong correlation between strength, based on precipitation size and embrittlement index, due to the absence of any significant formation of delta phase for the investigated microstructures. For the given test parameters, Alloy 945X did not display any reduced sensitivity to HE compared with Alloy 718 when considering high-strength conditions despite the absence of intergranular delta phase.
机译:氢脆敏感性(HE)已经研究了在相对于沉淀尺寸分布的两种镍基超合金:合金718(UNS N07718)和合金945X(UNS N09946)。定量显微结构分析是通过扫描和透射电子显微镜和能量分散型X射线光谱(EDS)的组合来进行。虽然合金718主要由伽马aEuro(3)加强,因此容易形成晶间Δ相位,合金945X已被设计通过减少的Nb水平通过伽马的组合提供高强度”和γaEuro(3)避免增量形成。慢应变速率拉伸试验在空气中不同的微结构的条件和充电阴极氢(H)之后进行。基于伸长的损失,由于在空气中相比,断裂伸长率为H摄取测定HE灵敏度。结果表明,两种合金所表现出的升高的敏感度HE。在H的断裂面预充电材料显示准解理,并在H-受影响的区域穿破解,而被朝向所述样品的中心观察到的延性破坏。对H中观察到的裂纹的起源预充电样品在高放大倍数显示出准解理与滑移痕迹。灵敏度稍微降低为合金718,由粗大化伽马aEuro(3),降低了合金的整体强度。然而,伽马的进一步粗化aEuro(3),这促进了晶界的连续装饰与delta相位,脆化指数上升再次指示从氢增强局部塑性(HELP)的氢脆机制的变化对氢增强脱粘脆化(合德)。与此相反,合金945X显示强度之间的强相关性,基于沉淀大小和脆化指数,由于不存在对于所研究的任何微结构形成显著Δ相位的。对于给定的测试参数,对HE尽管没有晶间Δ相位的考虑高强度条件时与合金718相比合金945X没有表现出任何的敏感性降低。

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